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    Overview
    ProductRatingMost Used ByProduct SummaryStarting Price

    Snyk

    Score8.6 out of 10
    N/ASnyk’s Developer Security Platform automatically integrates with a developer’s workflow and helps security teams to collaborate with their development teams. It boasts a developer-first approach that ensures organizations can secure all of the critical components of their applications from code to cloud, driving developer productivity, revenue growth, customer satisfaction, cost savings and an improved security posture. The vendor states Snyk is used by 1,200 customers worldwide today, including…

    $0

    TensorFlow

    Score7.6 out of 10
    N/ATensorFlow is an open-source machine learning software library for numerical computation using data flow graphs. It was originally developed by Google.N/A
    Pricing
    SnykTensorFlow
    Editions & Modules
    Free
    $0
    Team (Snyk Open Source or Snyk Container or Snyk Infrastructure as Code)
    $23
    per month per user
    Business (Snyk Open Source or Snyk Container or Snyk Infrastructure as Code)
    $42
    per month per user
    Team (Snyk Open Source + Snyk Container + Snyk Code + Snyk Infrastructure as Code)
    $98
    per month per user
    Business (Snyk Open Source + Snyk Container + Snyk Code + Snyk Infrastructure as Code)
    $178
    per month per user
    Enterprise
    Contact Sales
    No answers on this topic
    Offerings
    Pricing Offerings
    SnykTensorFlow
    Free Trial
    YesNo
    Free/Freemium Version
    YesNo
    Premium Consulting/Integration Services
    NoNo
    Entry-level Setup FeeNo setup feeNo setup fee
    Additional DetailsPricing is dependent on the number of developers selected, the number of products selected, and the payment term selected. Please visit the Snyk plans page for an interactive pricing calculator.—
    More Pricing Information
    Community Pulse
    SnykTensorFlow
    Considered Both Products
    Snyk
    No answer on this topic
    Open Source
    No answer on this topic
    Key User Insights
    Would buy again
    100%
    Would buy again
    6 Answers
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    Delivers good value for the price
    No answers on this topic
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    Happy with the feature set
    100%
    Happy with the feature set
    6 Answers
    No answers on this topic
    Lived up to sales and marketing promises
    No answers on this topic
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    Implementation went as expected
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    Best Alternatives
    SnykTensorFlow
    Small Businesses
    No answers on this topic
    Google Cloud AI
    Score8.7 out of 10
    Medium-sized Companies
    No answers on this topic
    Google Cloud AI
    Score8.7 out of 10
    Enterprises
    No answers on this topic
    Google Cloud AI
    Score8.7 out of 10
    All AlternativesView all alternativesView all alternatives
    User Ratings
    SnykTensorFlow
    Likelihood to Recommend
    8.5
    (6 ratings)
    6.0
    (15 ratings)
    Usability
    9.0
    (2 ratings)
    9.0
    (1 ratings)
    Support Rating
    -
    (0 ratings)
    9.1
    (2 ratings)
    Implementation Rating
    -
    (0 ratings)
    8.0
    (1 ratings)
    User Testimonials
    SnykTensorFlow
    Likelihood to Recommend
    Snyk
    Scenarios Where Snyk Is Well-Suited CI/CD Pipeline Integration (Node.js, Python, etc.) Container Security Open Source License Compliance Infrastructure as Code (IaC) SecurityScenarios Where Snyk May Be Less Appropriate Scanning Proprietary or Custom Code for Unknown Vulnerabilities Complex Monorepos with Custom Build Tools Organizations Requiring Custom Security Rules Advanced Security Teams Needing Correlation and Deep Triage.
    Incentivized
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    Open Source
    TensorFlow is great for most deep learning purposes. This is especially true in two domains: 1. Computer vision: image classification, object detection and image generation via generative adversarial networks 2. Natural language processing: text classification and generation. The good community support often means that a lot of off-the-shelf models can be used to prove a concept or test an idea quickly. That, and Google's promotion of Colab means that ideas can be shared quite freely. Training, visualizing and debugging models is very easy in TensorFlow, compared to other platforms (especially the good old Caffe days). In terms of productionizing, it's a bit of a mixed bag. In our case, most of our feature building is performed via Apache Spark. This means having to convert Parquet (columnar optimized) files to a TensorFlow friendly format i.e., protobufs. The lack of good JVM bindings mean that our projects end up being a mix of Python and Scala. This makes it hard to reuse some of the tooling and support we wrote in Scala. This is where MXNet shines better (though its Scala API could do with more work).
    Incentivized
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    Pros
    Snyk
    • Helps in dependency management
    • SAST - Static Application Security Testing
    • Infra Code Scan ( Terraform , Cloud Formation , Docker image scan)
    • OSSG
    Incentivized
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    Open Source
    • A vast library of functions for all kinds of tasks - Text, Images, Tabular, Video etc.
    • Amazing community helps developers obtain knowledge faster and get unblocked in this active development space.
    • Integration of high-level libraries like Keras and Estimators make it really simple for a beginner to get started with neural network based models.
    Incentivized
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    Cons
    Snyk
    • The tool itself has many capabilities but using them operationally within the platform on a day to day basis for managing vulnerabilities is not a good experience.
    • Our company was in desparate need of a tool to help us manage vulnerabilities so we could achieve a SOC 2 assurance report without findings.
    Incentivized
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    Open Source
    • RNNs are still a bit lacking, compared to Theano.
    • Cannot handle sequence inputs
    • Theano is perhaps a bit faster and eats up less memory than TensorFlow on a given GPU, perhaps due to element-wise ops. Tensorflow wins for multi-GPU and “compilation” time.
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    Usability
    Snyk
    Developer-Centric Design - Snyk integrates directly into IDEs (like VS Code and IntelliJ), CI/CD pipelines, GitHub/GitLab, and container registries. Clear, Actionable Vulnerability report issues are categorized by severity.


    Reports include fix recommendations, pull request suggestions, and links to remediation advice.
    Incentivized
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    Open Source
    Support of multiple components and ease of development.
    Incentivized
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    Support Rating
    Snyk
    No answers on this topic
    Open Source
    Community support for TensorFlow is great. There's a huge community that truly loves the platform and there are many examples of development in TensorFlow. Often, when a new good technique is published, there will be a TensorFlow implementation not long after. This makes it quick to ally the latest techniques from academia straight to production-grade systems. Tooling around TensorFlow is also good. TensorBoard has been such a useful tool, I can't imagine how hard it would be to debug a deep neural network gone wrong without TensorBoard.
    Incentivized
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    Implementation Rating
    Snyk
    No answers on this topic
    Open Source
    Use of cloud for better execution power is recommended.
    Incentivized
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    Alternatives Considered
    Snyk
    Unfortunately, neither cover all of the use cases that we would like so we need to use both but they are both excellent tools as part of our vulnerability management. We find that Snyk helps us better with improving our MTTR of identified vulnerabilities when compared to inspector but that may be more based on how we have implemented both tools
    Incentivized
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    Open Source
    Keras is built on top of TensorFlow, but it is much simpler to use and more Python style friendly, so if you don't want to focus on too many details or control and not focus on some advanced features, Keras is one of the best options, but as far as if you want to dig into more, for sure TensorFlow is the right choice
    Incentivized
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    Return on Investment
    Snyk
    • Increased developer experience
    • Better productivity due to shift left as Vulnerabilities are caught earlier in the SDLC process
    • Improved Vulnerability Management
    • Common dashboard for various stages in CI/CD
    Incentivized
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    Open Source
    • Learning is s bit difficult takes lot of time.
    • Developing or implementing the whole neural network is time consuming with this, as you have to write everything.
    • Once you have learned this, it make your job very easy of getting the good result.
    Incentivized
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